Functional hydrogel structures for autonomous flow control inside microfluidic channels
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- 6 April 2000
- journal article
- research article
- Published by Springer Nature in Nature
- Vol. 404 (6778) , 588-590
- https://doi.org/10.1038/35007047
Abstract
Hydrogels have been developed to respond to a wide variety of stimuli1,2,3,4,5,6, but their use in macroscopic systems has been hindered by slow response times (diffusion being the rate-limiting factor governing the swelling process). However, there are many natural examples of chemically driven actuation that rely on short diffusion paths to produce a rapid response7. It is therefore expected that scaling down hydrogel objects to the micrometre scale should greatly improve response times. At these scales, stimuli-responsive hydrogels could enhance the capabilities of microfluidic systems by allowing self-regulated flow control. Here we report the fabrication of active hydrogel components inside microchannels via direct photopatterning of a liquid phase. Our approach greatly simplifies system construction and assembly as the functional components are fabricated in situ, and the stimuli-responsive hydrogel components perform both sensing and actuation functions. We demonstrate significantly improved response times (less than 10 seconds) in hydrogel valves capable of autonomous control of local flow.Keywords
This publication has 13 references indexed in Scilit:
- Microfabrication Inside Capillaries Using Multiphase Laminar Flow PatterningScience, 1999
- A reversibly antigen-responsive hydrogelNature, 1999
- Design and Self-Assembly of Open, Regular, 3D MesostructuresScience, 1999
- Totally Synthetic Polymer Gels Responding to External Glucose Concentration: Their Preparation and Application to On−Off Regulation of Insulin ReleaseJournal of the American Chemical Society, 1998
- Synthesis and Application of Modulated Polymer GelsScience, 1995
- Controlled Folding of Micrometer-Size StructuresScience, 1995
- Phase transition in polymer gels induced by visible lightNature, 1990
- Microrobots and micromechanical systemsSensors and Actuators, 1989
- Collapse of Gels in an Electric FieldScience, 1982
- Phase Transitions in Ionic GelsPhysical Review Letters, 1980